We keep seeing fragility installing software, with both brew (e.g., the recent python issues) and apt.llvm.org (currently flaky).
At this point, images for both ubuntu and macos have versions of llvm-14 that seem to successfully compile:
https://github.com/carbon-language/carbon-lang/actions/runs/3474670746/jobs/5808098087
Although we may want to figure out a way to resume running llvm-15 so that we can see compatibility issues, this seems preferable for baseline testing in order to reduce maintenance churn.
In addition to the above changes, this also configures cancellation more precisely, and stops installing bazel/bazelisk (it should already be preinstalled).
This is necessary in order to use a bracketing approach; parsing doesn't know the contained format until it parses the first element, which we don't want to do look-ahead for. I think the bracketing is higher value than knowing the format before adding the node.
This changes `return`, `break`, and `continue` to treat the keyword as the "start" and semicolon as the "parent", essentially bracketing the keyword.
Pragmatically this is focusing on making `return` work with only one ParseNodeKind: because `return` and `;` now bracket the expression, we can tightly determine whether the `return` has arguments without looking at subtree size. However, it's possible that `break` and `continue` may in the future take some kind of label as an argument, so the consistency seems beneficial there too.
Note this eliminates the StatementEnd ParseNodeKind, as it's obsolete with this change.
While the Parser has similar divergent states, lists of Expressions tend to be handled more like this. I'm keeping the divergent start state in order to continue support of a distinct error, but I think this organization of FunctionParameter/FunctionParameterFinish will be less surprising.
Patterns all compute their values when type-checked, so we never
actually need to do any multi-step evaluation to compute the value of a
pattern. Doing so was leading to quadratic runtime and excess noise in
the trace file.
Makes explorer/testdata/assoc_const/rewrite_large_type.carbon NOAUTOUPDATE and no-trace because otherwise it takes ~130s to run. With this it's sub-second, explorer is just dumping a lot of trace output (maybe still something to fix).
This adds a second double linked list test carbon program, which has
the major difference, that it is not bound to a type but rather uses the
generics system to allow the type to be be specified at creation.
Of course this is heavily inspired by the first linked_list example program,
but this does show of/test a different feature set solving the same problem.
Adds remaining expression support, and switches the default to Parser2.
Note, this doesn't delete the current Parser yet. I'll just do that in its own PR.
Adds `while` and most of the expression support. Splits apart the fixity test to demonstrate more closely which bits are still failing.
```
//toolchain/parser/testdata:basics/fail_paren_match_regression.carbon.test FAILED in 0.8s
//toolchain/parser/testdata:basics/function_call.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:basics/package.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:basics/structs.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:basics/tuples.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:basics/var.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:for/fail_colon_instead_of_in.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:for/fail_missing_in.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:for/fail_missing_var.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:for/nested.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:for/simple.carbon.test FAILED in 0.8s
//toolchain/parser/testdata:function/definition/with_params.carbon.test FAILED in 0.8s
//toolchain/parser/testdata:operators/fixity_in_call.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:operators/fixity_in_var.carbon.test FAILED in 0.8s
```
Co-authored-by: Chandler Carruth <chandlerc@gmail.com>
Allow unqualified name lookup in multiple situations:
- For classes and interfaces, whether inside the class scope or within an
out-of-line function definition.
- For namespaces, when the namespace is used in a declaration.
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
Adds support for subscripting using the conventional square-bracket syntax, with support for both array-like and slice-like semantics.
Co-authored-by: Richard Smith <richard@metafoo.co.uk>
Co-authored-by: josh11b <josh11b@users.noreply.github.com>
The ParseTree comments say that preorder is "easier to visualize and read". The problem is, both the ParseTree and Semantics need to operate on the postorder traversal: the ParseTree during construction, and the Semantics during processing. As a consequence, understanding the postorder traversal is important, but it's also very hard to decipher when presented preorder. This PR provides a way to see the postorder, with helpful indents to show subtrees.
This retains the preorder printing as an option for people who prefer that. I'm pretty sure it'll be easier to debug tests if we can see the postorder, so I'm making that the default.
Co-authored-by: Chandler Carruth <chandlerc@gmail.com>
Also does `if` support, discussed refactorings, like PopState/PushState instead of edits.
With these changes, I'm to where I can start talking about what's still missing:
```
//toolchain/parser/testdata:basics/fail_invalid_designators.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:basics/fail_paren_match_regression.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:basics/function_call.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:basics/package.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:basics/structs.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:basics/tuples.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:basics/var.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:for/fail_colon_instead_of_in.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:for/fail_missing_in.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:for/fail_missing_var.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:for/nested.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:for/simple.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:function/definition/with_params.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:operators/associative.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:operators/fail_missing_precedence_and_or.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:operators/fail_missing_precedence_or_and.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:operators/fail_variety.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:operators/fixity.carbon.test FAILED in 0.9s
//toolchain/parser/testdata:operators/missing_precedence_not.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:operators/postfix_unary.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:operators/prefix_unary.carbon.test FAILED in 0.7s
//toolchain/parser/testdata:while/basic.carbon.test FAILED in 0.6s
//toolchain/parser/testdata:while/fail_unbraced.carbon.test FAILED in 0.6s
```
This does modify a couple `if` tests to not test so much expression syntax -- that just seems like unrelated syntax.
At present, CHECK/FATAL print their own stack trace. This switches to just using std::abort for the stack trace, as well as the CHECK printing more completely.
This has a few consequences:
1) I'm now buffering the FATAL strings in order to print it later.
2) We now print the bug report message and program arguments on failure. This is part of pretty printing and was elided before.
3) We can now have pretty printing on FATAL, e.g. to show the stacks we're building in the parser.
This PR includes the following changes:
* Added destruction process for tuples
* Fix: In the current version only the last member of a object can be destroyed
* Fix: In the current version, the destructor of the object is called after each method call
I hope it is useful
Co-authored-by: m new <michael.burzan@outlook.de>
Co-authored-by: Geoff Romer <gromer@google.com>
Ubuntu 22.04 base image and examples using github, a copy instruction and volumes.
I was using this to run examples on a windows machine since it is more comfortable than switching OS or using the WSL subsystem directly.
If this is something that other people would like to have I can add other versions of ubuntu and other linux distributions.
Remove a confusing mention of a specific version of C++ (C++17) from the
interoperability goals.
Expand the content of the goals to make it clear that we have a moving and
ongoing target of C++ as it continues to evolve. Also emphasize that we will
prioritize among the different features during Carbon's development based on how
they impact the overall project.
However, this intends to preserve the fact that there may exist long-tail or
corner-case features in C++ that never end up with high quality or exhaustive
support in our interop story simply because their impact on Carbon users is
sufficiently small that it doesn't justify the cost.
Fixes#1587
The intent of this approach is to eliminate recursion limits as a barrier for the parser. While it may not be urgent to address, I want to avoid pouring effort into a parser approach that we don't think will be usable long-term.
Right now this is passing a minor set of tests. It's intended to be enough to show how I'm thinking about flow control for the parser. I'm manually switching back and forth because it seemed like the easiest approach that avoids duplicating tests.
This starts adding builtins with TypeType and IntegerLiteralType. Note, structurally that's all they are, and not directly accessible in any way.
Adds a type field to SemanticsNode. Now, IntegerLiteralType can be identified as having type=TypeType, and IntegerLiteral as type=IntegerLiteralType. The current iteration doesn't do anything for type propagation, because I wanted to avoid making this too big.
This also switches the Identifier IR to instead BindName, with some side-effects. I'd been trying to think how to provide a name for TypeType, and switching around how things worked seemed like a better approach. And while I think it's the right direction (e.g., alias should just be a BindName), I also realized I don't need to name TypeType: there's probably a keyword to refer to the builtin, so it shouldn't use regular name lookup.
In particular, this means that a type can implement `ImplicitAs(Type)` and have values of that type behave like types.
This implies that `()` and `{}` are no longer types. They are now values whose type is the result of converting `()` or `{}` to type `Type`, as has been discussed recently and seems to be the supported direction. This fixes various cases where these types were previously mishandled.
When resolving a constraint type, compute the fixed point of the specified rewrite constraints, as requested by @josh11b in review of #2173 and tentatively agreed as our direction. If no such fixed point exists, detect that situation and diagnose the problem.
The algorithm used here is to iteratively apply all rewrites to each rewrite constraint until either one of them refers to itself, which indicates there's a cycle in the rewrite graph, or the set of rewrites converges.
This algorithm has some pathological inputs in which the runtime can grow exponentially in the size of the input (indeed, the fully-rewritten set of rewrites can grow exponentially in the size of the input, so this is unavoidable), so an iteration limit is also provided.
As I'm looking at adding builtins, it feels a bit like the types of args will end up scaling close to the number of semantic kinds. Rather than having this lead to a bunch of macros, this approach drops the macros for plain code.
Note, this adds Get functions too -- I'd planned those regardless for type safety, this is just getting ahead of the issue so that the Print function is pretty clean.
As a step towards builtins, provide more blocks. The intent is that any significant scope change will become its own NodeBlock. Builtins should produce the first set of node blocks.
Note, SemanticsIR as set up here isn't handling ordering of import processing -- I haven't thought that through much beyond that we probably want some lighter-weight processing of the parse tree to achieve it. But I think the essence of loading builtins first as their own IR block is... probably right?
I'm thinking about how to handle multiple files, and I think the current IRFactory is useful as a file-focused thing. So shifting/renaming accordingly. (doing this in its own PR to make the history a little cleaner for git's move detection)
Within the type of an associated constant, references to `.Self` should resolve symbolically to that associated constant as a `GenericBinding` so that it can be substituted for the actual value when using its type. However, when the associated constant is referenced from elsewhere in the same interface, the value we want is a symbolic value naming the constant as a member of `Self`.
Prior to this change, declarations like `let N:! X(.Self) where .(X(.Self).Y) == 5;` have the surprising behavior of the two `.Self` expressions resolving to two different symbolic values. Fix this by forcing the inner one to have the same symbolic value as the outer one, albeit with a different type.
* fix issue-1392
* run pre-commit
* run pre-commit
* Update explorer/interpreter/type_checker.cpp
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
* change test file
* change test file
* remove size check
* Update explorer/interpreter/type_checker.cpp
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
Co-authored-by: m new <michael.burzan@outlook.de>
Co-authored-by: Jon Ross-Perkins <jperkins@google.com>
Instead of checking and resolving rewrites eagerly, defer doing so until a constraint is applied to a binding. Actual resolution of rewrites is not yet implemented, so this is mostly just refactoring, but the eventual goal is to support things like `(Constraint where .T = .U) & (Constraint where .U = V)` (however they are reached) by applying one rewrite to the other, as agreed with @josh11b in discussion of #2173.
One nice consequence is that substitution into a constraint type no longer has a failure path, so substitution is once again not able to fail.
Mostly wanted to more clearly separate the closing observations from the
rest of the report. Noticed the missing link while I was there so fixing
that too.
This is intended to be used only when creating source locations that are known to be ignored because they are fed into operations whose diagnostics are discarded and that do not store the location in any created object.
As requested in review of #2321.